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Hydra, a Computer-Based Platform for Aiding Clinicians in Cardiovascular Analysis and Diagnosis
Published on: September 26, 2018
Spatial analysis of cardiovascular mortality and associated factors around the world
Emerson Augusto Baptista1, Bernardo Lanza Queiroz2
1Center for Demographic, Urban and Environmental Studies, El Colegio de México A.C., 14110, Mexico City, Mexico. ebaptista@colmex.mx.
Insights
Cardiovascular disease (CVD) mortality is linked to socioeconomic factors and behaviors like smoking and diet. Understanding spatial patterns in CVD risk factors and mortality can inform public health strategies and boost economic growth.
Area of Science:
- Public Health
- Epidemiology
- Spatial Analysis
Background:
- Cardiovascular disease (CVD) is a leading global cause of death, with risk factors and mortality unevenly distributed.
- Understanding the spatial relationships of CVD risk factors and mortality is crucial for effective public health interventions.
Purpose of the Study:
- To investigate the association between cardiovascular disease (CVD) mortality rates in adults (over 30) and the characteristics of surrounding countries.
- To compare commonly used mortality and health study models for spatial analysis.
Main Methods:
- Exploratory data analysis (EDA) to understand variable behavior.
- Application of ordinary least squares (OLS) regression.
- Implementation of spatial lag and spatial error models to account for spatial dependence.
Main Results:
- Socioeconomic variables, particularly income, show a significant relationship with CVD.
- Individual behaviors, including smoking and dietary habits, are highlighted as important factors influencing future CVD mortality trends.
Conclusions:
- Findings offer insights for policymakers to develop effective public health strategies for CVD prevention.
- Reducing CVD mortality can positively impact economic growth by increasing life expectancy and workforce participation.
Background:
Cardiovascular disease (CVD) is one of the most serious health issues and the leading cause of death worldwide in both developed and developing countries. The risk factors for CVD include demographic, socioeconomic, behavioral, environmental, and physiological factors. However, the spatial distribution of these risk factors, as well as CVD mortality, are not uniformly distributed across countries. Therefore, the goal of this study is to compare and evaluate some models commonly used in mortality and health studies to investigate whether the CVD mortality rates in the adult population (over 30 years of age) of a country are associated with the characteristics of surrounding countries from 2013 to 2017.
Methods:
We present the spatial distribution of the age-standardized crude mortality rate from cardiovascular disease, as well as conduct an exploratory data analysis (EDA) to obtain a basic understanding of the behavior of the variables of interest. Then, we apply the ordinary least squares (OLS) to the country level dataset. As OLS does not take into account the spatial dependence of the data, we apply two spatial modelling techniques, that is, spatial lag and spatial error models.
Results:
Our empirical findings show that the relationship between CVD and income, as well as other socioeconomic variables, are important. In addition, we highlight the importance of understanding how changes in individual behavior across different countries might affect future trends in CVD mortality, especially related to smoking and dietary behaviors.
Conclusions:
We argue that this study provides useful clues for policymakers establishing effective public health planning and measures for the prevention of deaths from cardiovascular disease. The reduction of CVD mortality can positively impact GDP growth because increasing life expectancy enables people to contribute to the economy of the country and its regions for longer.
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